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4 changes: 2 additions & 2 deletions src/Microsoft.ML.Data/Prediction/Calibrator.cs
Original file line number Diff line number Diff line change
Expand Up @@ -1437,13 +1437,13 @@ public bool SaveAsOnnx(OnnxContext ctx, string[] scoreProbablityColumnNames, str
string opType = "Affine";
string linearOutput = ctx.AddIntermediateVariable(null, "linearOutput", true);
var node = ctx.CreateNode(opType, new[] { scoreProbablityColumnNames[0] },
new[] { linearOutput }, ctx.GetNodeName(opType), "ai.onnx");
new[] { linearOutput }, ctx.GetNodeName(opType), "");
node.AddAttribute("alpha", ParamA * -1);
node.AddAttribute("beta", -0.0000001);

opType = "Sigmoid";
node = ctx.CreateNode(opType, new[] { linearOutput },
new[] { scoreProbablityColumnNames[1] }, ctx.GetNodeName(opType), "ai.onnx");
new[] { scoreProbablityColumnNames[1] }, ctx.GetNodeName(opType), "");

return true;
}
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1 change: 0 additions & 1 deletion src/Microsoft.ML.Data/Transforms/ConcatTransform.cs
Original file line number Diff line number Diff line change
Expand Up @@ -723,7 +723,6 @@ public void SaveAsOnnx(OnnxContext ctx)
var node = ctx.CreateNode(opType, inputList.Select(t => t.Key),
new[] { ctx.AddIntermediateVariable(outColType, outName) }, ctx.GetNodeName(opType));

node.AddAttribute("inputList", inputList.Select(x => x.Key));
node.AddAttribute("inputdimensions", inputList.Select(x => x.Value));
}
}
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5 changes: 4 additions & 1 deletion src/Microsoft.ML.Data/Transforms/TermTransform.cs
Original file line number Diff line number Diff line change
Expand Up @@ -719,7 +719,10 @@ protected override bool SaveAsOnnxCore(OnnxContext ctx, int iinfo, ColInfo info,
var node = ctx.CreateNode(opType, srcVariableName, dstVariableName, ctx.GetNodeName(opType));
node.AddAttribute("classes_strings", terms.DenseValues());
node.AddAttribute("default_int64", -1);
node.AddAttribute("default_string", DvText.Empty);
//default_string needs to be an empty string but there is a BUG in Lotus that
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What is Lotus? Do you mean runtime?

//throws a validation error when default_string is empty. As a work around, set
//default_string to a space.
node.AddAttribute("default_string", " ");
return true;
}

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4 changes: 2 additions & 2 deletions src/Microsoft.ML.Onnx/OnnxUtils.cs
Original file line number Diff line number Diff line change
Expand Up @@ -252,10 +252,10 @@ public static ModelProto MakeModel(List<NodeProto> nodes, string producerName, s
model.Domain = domain;
model.ProducerName = producerName;
model.ProducerVersion = producerVersion;
model.IrVersion = (long)UniversalModelFormat.Onnx.Version.IrVersion;
model.IrVersion = (long)Version.IrVersion;
model.ModelVersion = modelVersion;
model.OpsetImport.Add(new OperatorSetIdProto() { Domain = "ai.onnx.ml", Version = 1 });
model.OpsetImport.Add(new OperatorSetIdProto() { Domain = "ai.onnx", Version = 6 });
model.OpsetImport.Add(new OperatorSetIdProto() { Domain = "", Version = 7 });
model.Graph = new GraphProto();
var graph = model.Graph;
graph.Node.Add(nodes);
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4 changes: 2 additions & 2 deletions src/Microsoft.ML.StandardLearners/Standard/LinearPredictor.cs
Original file line number Diff line number Diff line change
Expand Up @@ -238,10 +238,10 @@ public bool SaveAsOnnx(OnnxContext ctx, string[] outputs, string featureColumn)
string opType = "LinearRegressor";
var node = ctx.CreateNode(opType, new[] { featureColumn }, outputs, ctx.GetNodeName(opType));
// Selection of logit or probit output transform. enum {'NONE', 'LOGIT', 'PROBIT}
node.AddAttribute("post_transform", 0);
node.AddAttribute("post_transform", "NONE");
node.AddAttribute("targets", 1);
node.AddAttribute("coefficients", Weight.DenseValues());
node.AddAttribute("intercepts", Bias);
node.AddAttribute("intercepts", new float[] { Bias });
return true;
}

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Original file line number Diff line number Diff line change
Expand Up @@ -845,12 +845,12 @@ public bool SaveAsOnnx(OnnxContext ctx, string[] outputs, string featureColumn)

string opType = "LinearClassifier";
var node = ctx.CreateNode(opType, new[] { featureColumn }, outputs, ctx.GetNodeName(opType));
// Selection of logit or probit output transform. enum {'NONE', 'LOGIT', 'PROBIT}
node.AddAttribute("post_transform", 0);
// Selection of logit or probit output transform. enum {'NONE', 'SOFTMAX', 'LOGISTIC', 'SOFTMAX_ZERO', 'PROBIT}
node.AddAttribute("post_transform", "NONE");
node.AddAttribute("multi_class", true);
node.AddAttribute("coefficients", _weights.SelectMany(w => w.DenseValues()));
node.AddAttribute("intercepts", _biases);
node.AddAttribute("classlabels_strings", _labelNames);
node.AddAttribute("classlabels_ints", Enumerable.Range(0, _numClasses).Select(x => (long)x));
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LR doesn't output labels (e.g., "A" and "B") anymore?

return true;
}

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4 changes: 2 additions & 2 deletions src/Microsoft.ML.Transforms/NAReplaceTransform.cs
Original file line number Diff line number Diff line change
Expand Up @@ -633,13 +633,13 @@ protected override bool SaveAsOnnxCore(OnnxContext ctx, int iinfo, ColInfo info,
node.AddAttribute("replaced_value_float", Single.NaN);

if (!Infos[iinfo].TypeSrc.IsVector)
node.AddAttribute("imputed_value_float", Enumerable.Repeat((float)_repValues[iinfo], 1));
node.AddAttribute("imputed_value_floats", Enumerable.Repeat((float)_repValues[iinfo], 1));
else
{
if (_repIsDefault[iinfo] != null)
node.AddAttribute("imputed_value_floats", (float[])_repValues[iinfo]);
else
node.AddAttribute("imputed_value_float", Enumerable.Repeat((float)_repValues[iinfo], 1));
node.AddAttribute("imputed_value_floats", Enumerable.Repeat((float)_repValues[iinfo], 1));
}

return true;
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